It is almost 30 years since the prototypical triptan, sumatriptan, was licensed, revolutionizing the treatment of migraine (1). Developed to activate the serotonin 5-HT1B and 1D receptors, the precise mechanisms and site of action of the triptans has been a hotly debated topic over the years, from an initial vascular theory to the now widely accepted neuronal theory (2). Indeed, it is now widely considered that the triptans, including sumatriptan, act to prevent the release of calcitonin gene-related peptide (CGRP) (3,4), specific modulation of which has now emerged as a standalone therapeutic option for migraine and cluster headache (5,6). Despite this increased knowledge, the exact site of action of the triptans remains elusive. While generally accepted to be acting peripherally on trigeminal nociceptive afferents, a potential central mechanism continues to be vigorously debated at most headache meetings.
Triptan binding sites have been identified throughout the central nervous system (CNS), including key regions of the hypothalamus (7) and brainstem (8), while local activation of 5-HT1B/1D receptors within the thalamus (9), hypothalamus (10), periaqueductal gray (11) and trigeminal nucleus caudalis (12) have all demonstrated anti-nociceptive effects in experimental animal models of trigeminal nociception. Clinically, a relatively poor CNS penetrability of the triptans has been heralded to negate a potential central site of action, supported by a comparative clinical efficacy between sumatriptan and the more lipophilic triptans, which points to limited increased clinical efficacy over relatively peripherally restricted triptans (13). However, the inability of sumatriptan to cross the blood-brain barrier (BBB) has recently been questioned, with systemic administration resulting in a 16% reduction in central 5-HT1B binding during migraine attacks (14). This raises the possibility that sumatriptan may elicit CNS effects during migraine, demonstrating receptor occupancies comparable with opioids (15), with their known CNS actions.
In this issue of Cephalalgia, Muzzi and colleagues (16) highlight an ultra-rapid CNS uptake of sumatriptan following subcutaneous administration in rats. Somewhat unexpectedly, sumatriptan reaches the hypothalamus within 1 minute of subcutaneous injection and the brainstem within 5 minutes, reaching levels comparable to the subfornical organ that lies outside the BBB. While the current study does not directly demonstrate comparable physiological actions, it does raise the interesting possibility that despite its low lipophilicity, sumatriptan can rapidly enter specific CNS regions of relevance to headache (17). In particular, the authors suggest that this novel rapid redistribution of sumatriptan to the hypothalamus within minutes could explain its quick therapeutic onset in cluster headache (18).
The BBB forms a dynamic barrier between the CNS and the body, establishing a critical homeostatic and protective interface that is essential for the maintenance of normal function, controlling substrate entry and the efflux of toxic byproducts (19). Architecturally, it consists of non-fenestrated brain endothelial cells that, along with glia and pericytes, form tight junctions and communicate with neurons to give rise to the neurovascular unit. The hypothalamus, acting as the master homeostatic regulator (20) of the brain, has developed several specialized modifications to permit the dynamic passage of hormones and nutrients across the BBB (19). These include the periventricular regions (21), where reduced tight junctions and highly fenestrated endothelial cells permit a more permeable barrier. One particular example is the median eminence, which lies adjacent to the arcuate nucleus, playing a prominent role in the regulation of metabolism that necessitates the ability of specialized arcuate neurons to sense nutritional status via circulating leptin levels. Interestingly, such specialized mechanisms are dynamic and respond to changes in the periphery, including tanacytes (specialized glial cells in the neurovascular unit) that alter their structure and function in response to fasting and feeding to modulate BBB penetrability and leptin transport to the mediobasal hypothalamus (22). A similar state-dependent alteration of the BBB has been proposed as far back as the 1970s with respect to migraine, with a “leaky” BBB proposed to increase CNS access during attacks (23); however, direct evidence for this is lacking. Indeed, recent findings suggest that the BBB largely remains intact during attacks of migraine with aura (24). It should be further noted that in the current study sumatriptan also rapidly reached the cortex and brainstem, where such specialized BBB zones do not exist.
Importantly, the authors compared sumatriptan uptake to that of oxazepam, a neuroactive and lipophilic compound, demonstrating that the later showed delayed CNS access in comparison to sumatriptan. It is important to consider that the drugs were administered subcutaneously, which is of ever-increasing clinical interest due to the potential ability to deliver biologics via this route (25). Indeed, insulin, a key hormone that is sensed by the hypothalamus (26), is routinely administered via the subcutaneous route. Upon subcutaneous delivery, the route of distribution varies depending on size, with either direct vascular access or, in the case of high molecular weights, via the lymphatic system (25). The rich vascular network facilitates relatively rapid uptake of low molecular weight molecules, enabled by the up to five-fold increased blood flow compared to lymph flow, with larger molecules relying upon passive diffusion across the extracellular matrix and subsequent access to the lymphatic system (27). The lymphatic system subsequently empties into the venous system at the level of the thoracic lymph duct (28); however, the rapid uptake observed in the current study would suggest direct vascular access.
While the current study does not demonstrate the mechanisms responsible for sumatriptan CNS uptake in rats, it represents an interesting addition to the ongoing debate regarding CNS sites of action and headache. When combined with potential CNS receptor occupancy of sumatriptan during migraine (14), its rapid CNS uptake in rats compared to more BBB-penetrant molecules and the ability of sumatriptan to alter hypothalamic serotonin and dopamine turnover (29) when administered subcutaneously in rats, it appears that the debate may well rumble on for the foreseeable future.
Declaration of conflicting interests
The authors declared no potential conflicts of interest with respect to the research, authorship, and/or publication of this article.
Funding
The authors received no financial support for the research, authorship, and/or publication of this article.
ORCID iD
Marta Vila-Pueyo https://orcid.org/0000-0003-0652-2988.
References
- 1.Cady RK, Wendt JK, Kirchner JR, et al. Treatment of acute migraine with subcutaneous sumatriptan. JAMA 1991; 265: 2831–2835. [PubMed] [Google Scholar]
- 2.Goadsby PJ. Can we develop neurally acting drugs for the treatment of migraine? Nat Rev Drug Discov 2005; 4: 741–750. [DOI] [PubMed] [Google Scholar]
- 3.Durham PL, Russo AF. Stimulation of the calcitonin gene-related peptide enhancer by mitogen-activated protein kinases and repression by an antimigraine drug in trigeminal ganglia neurons. J Neurosci 2003; 23: 807–815. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 4.Goadsby PJ, Edvinsson L. The trigeminovascular system and migraine: Studies characterizing cerebrovascular and neuropeptide changes seen in humans and cats. Ann Neurol 1993; 33: 48–56. [DOI] [PubMed] [Google Scholar]
- 5.Goadsby PJ, Dodick DW, Leone M, et al. Trial of galcanezumab in prevention of episodic cluster headache. N Engl J Med 2019; 381: 132–141. [DOI] [PubMed] [Google Scholar]
- 6.Goadsby PJ, Reuter U, Hallström Y, et al. A controlled trial of erenumab for episodic migraine. N Engl J Med 2017; 377: 2123–2132. [DOI] [PubMed] [Google Scholar]
- 7.Anisman H, Du L, Palkovits M, et al. Serotonin receptor subtype and p11 mRNA expression in stress-relevant brain regions of suicide and control subjects. J Psychiatry Neurosci 2008; 33: 131–141. [PMC free article] [PubMed] [Google Scholar]
- 8.Bonaventure P, Voom P, Luyten WH, et al. Detailed mapping of serotonin 5-HT1B and 5-HT1D receptor messenger RNA and ligand binding sites in guinea-pig brain and trigeminal ganglion: clues for function. Neuroscience 1998; 82: 469–484. [DOI] [PubMed] [Google Scholar]
- 9.Summ O, Carbit AR, Andreou AP, et al. Modulation of nocioceptive transmission with calcitonin gene-related peptide receptor antagonists in the thalamus. Brain 2010; 133: 2540–2548. [DOI] [PubMed] [Google Scholar]
- 10.Robert C, Bourgeais L, Arreto CD, et al. Paraventricular hypothalamic regulation of trigeminovascular mechanisms involved in headaches. J Neurosci 2013; 33: 8827–8840. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 11.Pozo-Rosich P, Storer RJ, Carbit AR, et al. Periaqueductal gray calcitonin gene-related peptide modulates trigeminovascular neurons. Cephalalgia 2015; 35: 1298–1307. [DOI] [PubMed] [Google Scholar]
- 12.Storer RJ, Akerman S, Goadsby PJ. Calcitonin gene-related peptide (CGRP) modulates nociceptive trigeminovascular transmission in the cat. Br J Pharmacol 2004; 142: 1171–1181. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 13.Ferrari MD, Goadsby PJ, Roon KI, et al. Triptans (serotonin, 5-HT1B/1D agonists) in migraine: Detailed results and methods of a meta-analysis of 53 trials. Cephalalgia 2002; 22: 633–658. [DOI] [PubMed] [Google Scholar]
- 14.Deen M, Hougaard A, Hansen HD, et al. Association between sumatriptan treatment during a migraine attack and central 5-HT1B receptor binding. Jama Neurol 2019; 76: 834–840. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 15.Melichar JK, Hume SP, Williams TM, et al. Using [C-11]diprenorphine to image opioid receptor occupancy by methadone in opioid addiction: Clinical and preclinical studies. J Pharmacol Exp Ther 2005; 312: 309–315. [DOI] [PubMed] [Google Scholar]
- 16.Muzzi M, Zecchi R, Ranieri G, et al. Ultra-rapid brain uptake of subcutaneous sumatriptan in the rat: Implication for cluster headache treatment. Cephalalgia. 2020; 40: 330#x02013;336. [DOI] [PubMed] [Google Scholar]
- 17.Goadsby PJ, Holland PR, Martins-Oliveira M, et al. Pathophysiology of migraine: A disorder of sensory processing. Physiol Rev 2017; 97: 553–622. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 18.Wilkinson M, Pfaffenrath V, Schoenen J, et al. Migraine and cluster headache – their management with sumatriptan: A critical review of the current clinical experience. Cephalalgia 1995; 15: 337–357. [DOI] [PubMed] [Google Scholar]
- 19.Haddad-Tóvolli R, Dragano NRV, Ramalho AFS, et al. Development and function of the blood-brain barrier in the context of metabolic control. Front Neurosci 2017; 11: 224–224. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 20.Schneeberger M, Gomis R, Claret M. Hypothalamic and brainstem neuronal circuits controlling homeostatic energy balance. J Endocrinol 2014; 220: T25–T46. [DOI] [PubMed] [Google Scholar]
- 21.Bennett L, Yang M, Enikolopov G, et al. Circumventricular organs: A novel site of neural stem cells in the adult brain. Mol Cell Neurosci 2009; 41: 337–347. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 22.Balland E, Dam J, Langlet F, et al. Hypothalamic tanycytes are an ERK-gated conduit for leptin into the brain. Cell Metab 2014; 19: 293–301. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 23.Harper AM, MacKenzie ET, McCulloch J, et al. Migraine and the blood-brain barrier. Lancet 1977; 1: 1034–1036. [DOI] [PubMed] [Google Scholar]
- 24.Hougaard A, Amin FM, Christensen CE, et al. Increased brainstem perfusion, but no blood-brain barrier disruption, during attacks of migraine with aura. Brain 2017; 140: 1633–1642. [DOI] [PubMed] [Google Scholar]
- 25.Bittner B, Richter W, Schmidt J. Subcutaneous administration of biotherapeutics: An overview of current challenges and opportunities. BioDrugs 2018; 32: 425–440. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 26.Kong D, Tong Q, Ye C, et al. GABAergic RIP-Cre neurons in the arcuate nucleus selectively regulate energy expenditure. Cell 2012; 151: 645–657. [DOI] [PMC free article] [PubMed] [Google Scholar]
- 27.Jones GB, Collins DS, Harrison MW, et al. Subcutaneous drug delivery: An evolving enterprise. Sci Transl Med 2017; 9: eaaf9166–eaaf9166. [DOI] [PubMed] [Google Scholar]
- 28.Trevaskis NL, Kaminskas LM, Porter CJ. From sewer to saviour – targeting the lymphatic system to promote drug exposure and activity. Nat Rev Drug Discov 2015; 14: 781–803. [DOI] [PubMed] [Google Scholar]
- 29.Mitsikostas DD, Papadopoulou-Daifotis Z, Sfikakis A, et al. The effect of sumatriptan on brain monoamines in rats. Headache 1996; 36: 29–31. [DOI] [PubMed] [Google Scholar]
